[1] Jardine, A. K. S., Lin, D., & Banjevic, D. (2006). A review on machinery diagnostics and prognostics implementing condition-based maintenance. Mechanical systems and signal processing, 20(7), 1483–1510. https://doi.org/10.1016/j.ymssp.2005.09.012
[2] Banjevic, D., Jardine, A. K. S., Makis, V., & Ennis, M. (2001). A control-limit policy and software for condition-based maintenance optimization. INFOR: Information systems and operational research, 39(1), 32–50. https://doi.org/10.1080/03155986.2001.11732424
[3] Zhao, X., Liu, B., & Liu, Y. (2018). Reliability modeling and analysis of load-sharing systems with continuously degrading components. IEEE transactions on reliability, 67(3), 1096–1110. https://doi.org/10.1109/TR.2018.2846649
[4] Dixit, Y., & Kulkarni, M. S. (2024). Simulation based approach for reliability and remaining useful life estimation of spur gear pair under non-Markov and non-stationary load transitions. Computers & industrial engineering, 190, 110026. https://doi.org/10.1016/j.cie.2024.110026
[5] Amari, S. V, Misra, K. B., & Pham, H. (2006). Reliability analysis of tampered failure rate load-sharing k-out-of-n: g systems. Proc. 12th issat int. conf. on reliability and quality in design, honolulu, hawaii (pp. 30–35). Researchgate.net. https://B2n.ir/bk2972
[6] Suprasad, A. V, Krishna, M. B., & Hoang, P. (2008). Tampered failure rate load-sharing systems: Status and perspectives. In Handbook of performability engineering (pp. 291–308). Springer. https://doi.org/10.1007/978-1-84800-131-2_20
[7] Mohammad, R., Kalam, A., & Amari, S. V. (2013). Reliability of load-sharing systems subject to proportional hazards model. 2013 proceedings annual reliability and maintainability symposium (RAMS) (pp. 1–5). IEEE. https://doi.org/10.1109/RAMS.2013.6517708
[8] de Smidt-Destombes, K. S., van der Heijden, M. C., & van Harten, A. (2004). On the availability of a k-out-of-N system given limited spares and repair capacity under a condition based maintenance strategy. Reliability engineering & system safety, 83(3), 287–300. https://doi.org/10.1016/j.ress.2003.10.004
[9] Ghasemi, A., Yacout, S., & Ouali, M. S. (2007). Optimal condition based maintenance with imperfect information and the proportional hazards model. International journal of production research, 45(4), 989–1012. https://doi.org/10.1080/00207540600596882
[10] Keizer, M. C. A. O., Teunter, R. H., & Veldman, J. (2017). Joint condition-based maintenance and inventory optimization for systems with multiple components. European journal of operational research, 257(1), 209–222. https://doi.org/10.1016/j.ejor.2016.07.047
[11] Keizer, M. C. A. O., Teunter, R. H., Veldman, J., & Babai, M. Z. (2018). Condition-based maintenance for systems with economic dependence and load sharing. International journal of production economics, 195, 319–327. https://doi.org/10.1016/j.ijpe.2017.10.030
[12] Yahyatabar, A., & Najafi, A. A. (2018). Condition based maintenance policy for series-parallel systems through Proportional Hazards Model: A multi-stage stochastic programming approach. Computers & industrial engineering, 126, 30–46. https://doi.org/10.1016/j.cie.2018.09.014
[13] Zhang, N., Fouladirad, M., Barros, A., & Zhang, J. (2020). Condition-based maintenance for a K-out-of-N deteriorating system under periodic inspection with failure dependence. European journal of operational research, 287(1), 159–167. https://doi.org/10.1016/j.ejor.2020.04.041
[14] Coit, D. W., & Smith, A. E. (1996). Reliability optimization of series-parallel systems using a genetic algorithm. IEEE transactions on reliability, 45(2), 254–260. https://doi.org/10.1109/24.510811
[15] Kuo, W. (2001). Optimal reliability design: Fundamentals and applications (2nd Ed.). Cambridge university press. https://B2n.ir/qw6862
[16] Ramirez-Marquez, J. E., & Coit, D. W. (2004). A heuristic for solving the redundancy allocation problem for multi-state series-parallel systems. Reliability engineering & system safety, 83(3), 341–349. https://doi.org/10.1016/j.ress.2003.10.010
[17] Coit, D. W., & Liu, J. C. (2000). System reliability optimization with k-out-of-n subsystems. International journal of reliability, quality and safety engineering, 7(02), 129–142. https://doi.org/10.1142/S0218539300000110
[18] Liang, Y. C., & Lo, M. H. (2010). Multi-objective redundancy allocation optimization using a variable neighborhood search algorithm. Journal of heuristics, 16, 511–535. https://doi.org/10.1007/s10732-009-9108-4
[19] Kayedpour, F., Amiri, M., Rafizadeh, M., Nia, A. S., & Sharifi, M. (2024). A Markov chain-based genetic algorithm for solving a redundancy allocation problem for a system with repairable warm standby components. Proceedings of the institution of mechanical engineers, part o: journal of risk and reliability, 238(4), 853–872. https://doi.org/10.1177/1748006X231164848
[20] Kumar, U. D., Crocker, J., Knezevic, J., & El-Haram, M. (2012). Reliability, maintenance and logistic support: A life cycle approach. Springer Science & Business Media. https://doi.org/10.1007/978-1-4615-4655-9
[21] Jin, T., Si, S., & Zhu, W. (2024). Allocating redundancy, maintenance and spare parts for minimizing system cost under decentralized repairs. Frontiers of engineering management, 11(3), 377–395. https://doi.org/10.1007/s42524-024-0145-3
[22] Belzunce, F., Martínez-Puertas, H., & Ruiz, J. M. (2013). On allocation of redundant components for systems with dependent components. European journal of operational research, 230(3), 573–580. https://doi.org/10.1016/j.ejor.2013.05.004
[23] Sharifi, M., Taghipour, S., & Abhari, A. (2021). Inspection interval optimization for a k-out-of-n load sharing system under a hybrid mixed redundancy strategy. Reliability engineering & system safety, 213, 107681. https://doi.org/10.1016/j.ress.2021.107681
[24] Amiri, M., Sadeghi, M. R., Khatami, F. A. L. I., & Mikaeili, F. (2014). A multi objective optimization model for redundancy allocation problems in series-parallel systems with repairable componenets, 25(1), 71–81. http://ijiepr.iust.ac.ir/
[25] Makis, V., & Jardine, A. K. S. (1992). Optimal replacement in the proportional hazards model. INFOR: Information systems and operational research, 30(1), 172–183. https://doi.org/10.1080/03155986.1992.11732183
[26] Bhattacharyya, G. K., & Soejoeti, Z. (1989). A tampered failure rate model for step-stress accelerated life test. Communications in statistics-theory and methods, 18(5), 1627–1643. https://doi.org/10.1080/03610928908829990
[27] Scheuer, E. M. (1988). Reliability of an m-out of-n system when component failure induces higher failure rates in survivors. IEEE transactions on reliability, 37(1), 73–74. https://doi.org/10.1109/24.3717
[28] Reza Golmakani, H., & Fattahipour, F. (2011). Age-based inspection scheme for condition-based maintenance. Journal of quality in maintenance engineering, 17(1), 93–110. https://doi.org/10.1108/13552511111116277
[29] Madi, M. T. (1993). Multiple step-stress accelerated life test: the tampered failure rate model. Communications in statistics--theory and methods, 22(9), 295–306.
[30] Lam, J. Y. J., & Banjevic, D. (2015). A myopic policy for optimal inspection scheduling for condition based maintenance. Reliability engineering & system safety, 144, 1–11. https://doi.org/10.1016/j.ress.2015.06.009
[31] Nasersarraf, S., Asadzadeh, S., & Samimi, Y. (2025). Control limits’ optimization for multi-component systems in condition-based maintenance incorporating stochastic dependencies among system components. OPSEARCH, 1–36. https://doi.org/10.1007/s12597-025-00906-0
[32] Krivtsov, V., Amari, S., & Gurevich, V. (2018). Load sharing in series configuration. Quality and reliability engineering international, 34(1), 15–26. https://doi.org/10.1002/qre.2230
[33] Lawless, J. F. (2011). Statistical models and methods for lifetime data. John Wiley & Sons. https://B2n.ir/bt8383
[34] Birge, J. R., & Louveaux, F. (2011). Introduction to stochastic programming. Springer Science & Business Media. https://B2n.ir/jw2707